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Significance of multiple mutations in cancer
1Department of Pathology, University of Washington School of Medicine, Seattle, WA 98195, USA. laloeb@u.washington.edu
Abstract:
There is increasing evidence that in eukaryotic cells, DNA undergoes continuous damage, repair and resynthesis. A homeostatic equilibrium exists in which extensive DNA damage is counterbalanced by multiple pathways for DNA repair. In normal cells, most DNA damage is repaired without error. However, in tumor cells this equilibrium may be skewed, resulting in the accumulation of multiple mutations. Among genes mutated are those that function in guaranteeing the stability of the genome. Loss of this stability results in a mutator phenotype. Evidence for a mutator phenotype in human cancers includes the frequent occurrence of gene amplification, microsatellite instability, chromosomal aberrations and aneuploidy. Current experiments have centered on two mechanisms for the generation of genomic instability, one focused on mutations in mismatch repair genes resulting in microsatellite instability, and one focused on mutations in genes that are required for chromosomal segregation resulting in chromosomal aberrations. This dichotomy may reflect only the ease by which these manifestations can be identified. Underlying both pathways may be a more general phenomenon involving the selection for mutator genes during tumor progression. During carcinogenesis there is selection for cells harboring mutations that can overcome adverse conditions that limit tumor growth. These mutations are produced by direct DNA damage as well as secondarily as a result of mutations in genes that cause a mutator phenotype. Thus, as tumor progression selects for cells with specific mutations, it also selects for cancer cells harboring mutations in genes that normally function in maintaining genetic instability.
Insights
Cancer cells accumulate mutations due to skewed DNA repair, leading to genomic instability. This mutator phenotype, driven by DNA damage and repair gene mutations, is selected for during tumor progression.
Area of Science:
- Molecular Biology
- Genetics
- Cancer Research
Background:
- Eukaryotic cells maintain DNA integrity through continuous damage, repair, and resynthesis.
- A homeostatic balance between DNA damage and repair exists in normal cells.
- Tumor cells often exhibit a skewed equilibrium, leading to accumulated mutations and genomic instability.
Purpose of the Study:
- To explore the mechanisms underlying genomic instability in tumor cells.
- To investigate the role of mutator phenotypes in cancer progression.
- To understand the selection pressures favoring cells with compromised DNA maintenance.
Main Methods:
- Review of evidence for mutator phenotypes in human cancers, including gene amplification, microsatellite instability, and chromosomal aberrations.
- Focus on two primary mechanisms: mismatch repair gene mutations and chromosomal segregation gene mutations.
- Consideration of underlying phenomena driving genomic instability during carcinogenesis.
Main Results:
- Tumor cells accumulate mutations due to a disrupted DNA repair equilibrium.
- Mutations in genome stability genes result in a mutator phenotype.
- Evidence for mutator phenotypes includes microsatellite instability and chromosomal aberrations.
Conclusions:
- Genomic instability, characterized by a mutator phenotype, is a hallmark of cancer.
- Selection for mutator genes occurs during tumor progression, enabling cells to overcome growth limitations.
- Both direct DNA damage and mutations in DNA repair pathways contribute to cancer development and progression.